I. TECHNICAL FIELD
[0001] The present disclosure relates to electronic cards, such as, for example and not
by limitation, computer cards and switched mezzanine cards or the like. The present
disclosure additionally relates to a method for implementing a reversible electronic
card.
II. BACKGROUND
[0002] Electronic cards or computer cards are typically an assembly of electronic components
that fit on a single or multi-layered PCB. An electronic card can include a connector
that allows it to be mated with another carrier card (e.g., a mother board) in order
to provide additional functionality to a larger system. Thermal management hardware
are typically inserted between the electronic card and the carrier card to provide
cooling. One issue encountered when using a typical electronic card is that it cannot
be easily reused and integrated in a different product that has a different cooling
strategy.
[0003] An example illustrating the aforementioned issue is a VITA 42.0-compliant mezzanine
card. This type of card is typically designed such that the connectors are located
on the hot side of the card. The mezzanine mounts via its connectors to a carrier
card, and a heatsink is designed to fit between them to conduct heat out towards the
sides of the module, typically to chassis walls that transfer heat externally to cooling
air. If this same mezzanine card were to be used in a different chassis that did not
have the same structure (i.e., walls on both sides), the cooling strategy would be
more complex and costlier to design.
[0004] The ideal cooling strategy in that case might be to conduct heat from the hot side
directly to the top cover of the chassis, but because the connector is fixed on the
hot side, there is no mating connector to plug it in to other modules. As such, the
design of typical electronic cards is inherently limiting, and it impedes re-use or
versatility.
[0005] EP 3 386 278 A1 relates to printed circuit boards used in lighting devices installed in automative
vehicles.
III. SUMMARY
[0006] The embodiments featured herein help solve or mitigate the above noted issues as
well as other issues known in the art. For instance, an exemplary method as described
below allows a manufacturer to develop a single computer card that can be integrated
into a product using different thermal management strategies. A card designer may
select one side of the card as the hot side and the other side as the cold side. The
printed circuit board (PCB) is then designed and routed such that all the components
are allocated to one of these sides, with the exception of the board-to-board connectors.
Moreover, the PCB design can support the placement of these connectors on either side
of the card.
[0007] The embodiments described herein feature several novel aspects in the electrical
and mechanical implementation steps undertaken when designing and manufacturing a
computer card, and they go beyond the steps involved in a typical computer card design
or manufacturing flow. For example, and not by limitation, the embodiments feature
novel signal routing methodologies, signal allocation, hole placement, and manufacturing
processes that would not be employed as part of the design of a standard computer
card that relies on a single thermal management approach. Two embodiments are summarized
below.
[0008] In one embodiment, there is provided a method for implementing an electronic card
as claimed in claim 1.
[0009] Additional features, modes of operations, advantages, and other aspects of various
embodiments are described below with reference to the accompanying drawings. It is
noted that the present disclosure is not limited to the specific embodiments described
herein. These embodiments are presented for illustrative purposes only. Additional
embodiments, or modifications of the embodiments disclosed, will be readily apparent
to persons skilled in the relevant art(s) based on the teachings provided.
IV. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Illustrative embodiments may take form in various components and arrangements of
components. Illustrative embodiments are shown in the accompanying drawings, throughout
which like reference numerals may indicate corresponding or similar parts in the various
drawings. The drawings are only for purposes of illustrating the embodiments and are
not to be construed as limiting the disclosure. Given the following enabling description
of the drawings, the novel aspects of the present disclosure should become evident
to a person of ordinary skill in the relevant art(s).
FIG. 1 illustrates a view of an electronic card according to an embodiment.
FIG. 2 illustrates a view of an electronic card according to an embodiment.
FIG. 3 illustrates a view of an electronic card according to an embodiment.
FIG. 4 illustrates a method according to an embodiment.
V. DETAILED DESCRIPTION
[0011] While the illustrative embodiments are described herein for particular applications,
it should be understood that the present disclosure is not limited thereto. Those
skilled in the art and with access to the teachings provided herein will recognize
additional applications, modifications, and embodiments within the scope thereof and
additional fields in which the present disclosure would be of significant utility.
[0012] FIG. 1 illustrates a view 100 of an electronic card 102, according to an embodiment.
The electronic card 102 can include a cold side 101 on which there is mounted a connector
104. The electronic card 102 can further include a set of features 106 configured
to support the electronic card 102 on a carrier card when it is mated with the carrier
card via the connector 104. As shown in FIG. 1, the connector 104 is mounted on the
cold side 101, and only connection hardware such as the connector 104 is mounted on
the cold side 101. Without loss of generality, only the connector 104 is shown. However,
it should be understood that a plurality of connectors like the connector 104 may
be mounted on the cold side 101.
[0013] Generally, in the view 100, the cold side 101 is reserved for connection hardware,
and the hot side (i.e., the side opposite to the cold side 101) is reserved for functional
components, which may be electronic chips and elements (e.g., capacitors, inductors,
resistors, etc.) that cooperatively function to provide one or more functionalities
to the electronic card 102. Furthermore, the hot side of the electronic card 102,
while being reserved for functional components, also includes a solder pattern and
conductivity for mounting a connector 104 should the electronic card 102 be used in
a product where the thermal management strategy dictates that the electronic card
102 be mated from the hot side to a carrier board. As such, as configured, the electronic
102 is versatile and can accommodate different thermal management strategies. For
example, FIG. 2 illustrates a view 200 of another implementation of the electronic
card 102 in which the connector 104 is mounted on the hot side 201 where there are
disposed a set of functional components 204.
[0014] FIG. 3 illustrates a view 300 showing a cross-section of the electronic card 102
with an exemplary signal routing network 302 and solder ball patterns 304 and 306
for mounting the connector 104 on either the cold side 101 or the hot side 201. The
electronic card 102 can include a multi-layered PCB 301 of a predetermined thickness,
which may be used to route a plurality of signals. As configured, the cold side 101
and the hot side 201 form two surfaces each occupying an x-y plane, where the planes
are separated by the predetermined thickness of the PCB 301 and where the planes are
parallel.
[0015] Each solder ball pattern (304 and 306) is symmetric. Furthermore, when considering
a coordinate system common to each of the two x-y planes, the solder ball pattern
304 and the solder ball pattern 306 have the same set of x-y coordinates. Furthermore,
the signal routing network 302 can include a route to a middle layer 307 win which
there's branch 303 that goes to either the cold side 101 or the hot side 201, depending
on which side has been designated for including the functional components. Furthermore,
one or more stubs 309 may be left on the PCB 301 as a result of not soldering a connector
on an unused side. The length of the stubs 309 may be minimized, i.e., the stubs 309
may have their lengths set such that they are below a predetermined length parameter.
[0016] FIG. 4 illustrates a flow chart for a method 400 for implementing the electronic
card 102 as described above. The method 400 begins at step 402 and can include providing
the electronic card 102 with a printed circuit board 301. (Step 404). The method 400
further includes selecting one of a first side and a second side as a specified side
on which only connection hardware is to be mounted. (Step 406) The first side is located
at a first x-y plane and the second side is located at a second x-y plane, the first
and second x-y planes being separated by a length equal to a thickness of the PCB.
The first and second x-y planes are parallel.
[0017] The method 400 further includes providing a first solder ball pattern on the first
side and a second solder ball pattern on the second side. (Step 408). The first and
second solder ball patterns are each a symmetric pattern. The first and second solder
ball patterns have the same x and y coordinates on their respective x-y planes. The
method 400 can end at step 410.
[0018] Generally, a method according to the embodiments feature herein can include designating
one of the first and second sides as a hot side and the other one of the first and
second side as a cold side. The method can further include designating the specified
side as the cold side. The method can further include designating the specified side
as the hot side. Furthermore, the method can include mounting a connector on the specified
side.
[0019] The method can include encapsulating an unused solder pattern on an unused side,
the unused side being a side other than the specified side. Furthermore, the method
can include making a stub of an unused solder pattern on an unused side shorter than
a predetermined length, the unused side being a side other than the specified side.
The method further includes routing a signal on a middle layer of the multi-layered
PCB. The method further includes branching the signal using a through via to a first
pad on the first side and to a second pad on the second side.
[0020] Still, generally, an embodiment according to the teachings presented herein can include
a reversible electronic card. The electronic card can include a PCB that comprises
a first side and a second side. The PCB has a specified side selected from the first
and second sides which is a side on which only connection hardware is mounted. The
first side is located at a first x-y plane and the second side is located at a second
x-y plane, and the first and second x-y planes are separated by a length equal to
a thickness of the PCB. The first and second x-y planes are parallel. The PCB includes
a first solder ball pattern disposed on a first surface on the first side and a second
solder ball pattern disposed on a second surface of the second side. The first and
second solder ball patterns are each a symmetric pattern. The first and second solder
ball patterns have the same x and y coordinates on their respective x-y planes.
[0021] The PCB can be a multi-layered PCB, and the electronic card can be a switched mezzanine
card. The electronic card can include a signal trace routed to a middle layer of the
multi-layered PCB, and it can include a branch of the signal with a through via to
a first pad on the first side and to a second pad on the second side. The specified
side includes a connector mounted thereon, and the opposite side to the specified
side includes one or more functional components.
[0022] Generally, an embodiment featured herein can include a method for implementing a
reversible electronic card. This method allows reuse of a card in different cooling
strategies by selecting connector(s) with particular characteristics and designing
specific features into a PCB included in the electronic card. The method includes
designating or selecting a side of the card as a "hot side" and an opposite side of
the card as a "cold side." The method further includes selecting a connector based
on a set of criteria that includes selecting solder balls or through-hole pins. The
solder balls may be arranged in a symmetrical pattern such that a connector may be
rotated 180 degrees around either an x-axis or a y-axis, and still be able to be attached
to the same printed circuit board footprint.
[0023] The method further includes providing alignment pins that are offset from each other
in the x and y dimensions such that when rotated either around the x dimension or
the y dimension, there is no interference with the alignment holes. As such, in the
exemplary method described above, a PCB may feature solder pads on both sides of the
PCB to match the connector footprint. The solder pads may be located at the same point
on the X-Y plane on both the "top" and the "bottom" surface of the PCB. Signals may
be routed to both surfaces (top and bottom), such that each signal is connected to
a pair of pads.
[0024] Furthermore, the stubs left on the PCB as a result of not soldering a connector on
an unused side may have their lengths minimized, i.e., they may have their lengths
set such that they are below a predetermined length parameter. Furthermore, in yet
another embodiment, the stubs may be zero-ohm resistors, and their length may be minimized
such that they are below a predetermined length parameter. Without limitation but
by example, the predetermined length parameter may be about 1.27 mm (50 mils).
[0025] In the exemplary PCB, the routing of a signal may be achieved by routing the signal
on one of the middle layers of a multi-layer PCB, and branching the signal using through
vias to the pads on both surfaces. The PCB may include drill holes for alignment pins
such that when the connector is rotated 180 degrees around both the X and Y axes,
the solder ball pattern will align on either surface.
[0026] In the exemplary PCB, pin identifiers may be rotated depending on which side the
connector is placed. As such, in the exemplary implementation, supporting design documentation
such as schematics and pinout lists reflect both options, and at manufacture, a particular
pinout is identified as valid, depending on which side the connector will be mounted.
Furthermore, unused connector pads on a surface without a connector can be covered
with a non-conductive coating material in order to prevent inadvertent shorting of
signals.
[0027] Those skilled in the relevant art(s) will appreciate that various adaptations and
modifications of the embodiments described above can be configured without departing
from the scope of the disclosure. Therefore, it is to be understood that, within the
scope of the appended claims, the disclosure may be practiced other than as specifically
described herein.
1. A method (400) for implementing an electronic card (102), the method (400) comprising:
providing the electronic card (102) with a printed circuit board, PCB (301);
selecting one of a first side (101) and a second side (201) of the electronic card
(102) as a specified connector side on which only connection hardware (104) is to
be mounted;
selecting the respective other of the first side (101) and the second side (201) as
a specified functional side on which functional hardware may be mounted, to provide
one or more functionalities to the electronic card (102);
wherein the first side (101) is located at a first x-y plane and the second side (201)
is located at a second x-y plane, the first and second x-y planes being separated
by a length equal to a thickness of the PCB (301);
wherein the first and second x-y planes are parallel;
providing a first solder ball pattern (304) on the first side (101) and a second solder
ball pattern (306) on the second side (201); characterized in that
the first and second solder ball patterns (304, 306) are each a symmetric pattern;
the first and second solder ball patterns (304, 306) have the same x and y coordinates
on their respective x-y planes; and
the electronic card (102) is reversible such that a signal routed on an intermediate
layer of the PCB (301) is accessible with a through via to a first pad on the first
side (101) and with the through via to a second pad on the second side (201).
2. The method (400) of claim 1, wherein providing electronic card (102) with the PCB
(301) includes providing a multi-layered PCB (301).
3. The method (400) of claim 1 or 2, wherein providing the electronic card (102) with
the PCB (301) includes providing a switched mezzanine card.
4. The method (400) of claim 3, wherein providing the providing the electronic card (102)
with the PCB (301) includes providing the switched mezzanine card with a multi-layered
PCB (301).
5. The method (400) of claim1, further including designating the specified connector
side as the cold side.
6. The method (400) of claim1, further including designating the specified functional
side as the hot side.
7. The method (400) of any of claims 1 to 6, further including mounting a connector on
the specified connector side.
8. The method (400) of any of claims 1 to 7, further including encapsulating an unused
solder pattern on the specified functional side.
9. The method (400) of any of claims 1 to 8, further including making a stub of an unused
solder pattern on the specified functional side shorter than a predetermined length.
10. The method (400) of claim 2 or any preceding claim that is dependent on claim 2, further
including routing the signal on a middle layer of the multi-layered PCB (301).
11. The method (400) of claim 10, further including branching the signal using the through
via to the first pad on the first side (101) and to the second pad on the second side
(201).
1. Verfahren (400) zur Implementierung einer elektronischen Karte (102), wobei das Verfahren
(400) umfasst:
Bereitstellen der elektronischen Karte (102) mit einer Leiterplatte, PCB (301);
Auswählen einer von einer ersten Seite (101) und einer zweiten Seite (201) der elektronischen
Karte (102) als eine festgelegte Anschlussseite, an der ausschließlich Anschlusshardware
(104) angebracht werden soll;
Auswählen der jeweiligen anderen von der ersten Seite (101) und der zweiten Seite
(201) als eine festgelegte Funktionsseite, an der Funktionshardware angebracht werden
kann, um der elektronischen Karte (102) eine oder mehrere Funktionalitäten zu verleihen;
wobei sich die erste Seite (101) an einer ersten x-y-Ebene befindet und sich die zweite
Seite (201) an einer zweiten x-y-Ebene befindet, wobei die erste und die zweite x-y-Ebene
durch eine Länge getrennt sind, die gleich einer Dicke der PCB (301) ist;
wobei die erste und die zweite x-y-Ebene parallel sind;
Bereitstellen eines ersten Lötkugelmusters (304) an der ersten Seite (101) und eines
zweiten Lötkugelmusters (306) an der zweiten Seite (201);
dadurch gekennzeichnet, dass
das erste und das zweite Lötkugelmuster (304, 306) jeweils ein symmetrisches Muster
sind;
das erste und das zweite Lötkugelmuster (304, 306) die gleichen x- und y-Koordinaten
auf der jeweiligen x-y-Ebene davon aufweisen; und
die elektronische Karte (102) reversibel ist, sodass auf ein auf einer Zwischenschicht
der PCB (301) geleitetes Signal über eine Durchkontaktierung zu einem ersten Kontaktfeld
an der ersten Seite (101) und über die Durchkontaktierung zu einem zweiten Kontaktfeld
an der zweiten Seite (201) zugegriffen werden kann.
2. Verfahren (400) nach Anspruch 1, wobei das Bereitstellen der elektronischen Karte
(102) mit der PCB (301) ein Bereitstellen einer mehrschichtigen PCB (301) umfasst.
3. Verfahren (400) nach Anspruch 1 oder 2, wobei das Bereitstellen der elektronischen
Karte (102) mit der PCB (301) ein Bereitstellen einer Switched Mezzanine-Karte umfasst.
4. Verfahren (400) nach Anspruch 3, wobei das Bereitstellen der elektronischen Karte
(102) mit der PCB (301) ein Bereitstellen der Switched Mezzanine-Karte mit einer mehrschichtigen
PCB (301) umfasst.
5. Verfahren (400) nach Anspruch 1, weiter umfassend Bestimmen der festgelegten Anschlussseite
als die Kaltseite.
6. Verfahren (400) nach Anspruch 1, weiter umfassend Bestimmen der festgelegten Funktionsseite
als die Heißseite.
7. Verfahren (400) nach einem der Ansprüche 1 bis 6, weiter umfassend Anbringen eines
Anschlusses an der festgelegten Anschlussseite.
8. Verfahren (400) nach einem der Ansprüche 1 bis 7, weiter umfassend Einkapseln eines
ungenutzten Lötmusters an der festgelegten Funktionsseite.
9. Verfahren (400) nach einem der Ansprüche 1 bis 8, weiter umfassend Kürzen eines Stumpfes
eines ungenutzten Lötmusters an der festgelegten Funktionsseite auf weniger als eine
vorbestimmte Länge.
10. Verfahren (400) nach Anspruch 2 oder einem vorstehenden Anspruch, der von Anspruch
2 abhängig ist, weiter umfassend Leiten des Signals auf einer mittleren Schicht der
mehrschichtigen PCB (301).
11. Verfahren (400) nach Anspruch 10, weiter umfassend Abzweigen des Signals unter Verwendung
der Durchkontaktierung zu dem ersten Kontaktfeld an der ersten Seite (101) und zu
dem zweiten Kontaktfeld an der zweiten Seite (201).
1. Procédé (400) de mise en œuvre d'une carte électronique (102), le procédé (400) comprenant
:
la fourniture, à la carte électronique (102), d'une carte de circuit imprimé, PCB,
(301) ;
la sélection de l'une parmi une première face (101) et une seconde face (201) de la
carte électronique (102) comme face de connecteur spécifiée sur laquelle seul du matériel
de connexion (104) doit être monté ;
la sélection de l'autre face respective parmi la première face (101) et la seconde
face (201) comme face fonctionnelle spécifiée sur laquelle du matériel fonctionnel
peut être monté, afin de fournir une ou plusieurs fonctionnalités à la carte électronique
(102) ;
dans lequel la première face (101) est située dans un premier plan x-y et la seconde
face (201) est située dans un second plan x-y, le premier et le second plans x-y étant
séparés d'une distance égale à l'épaisseur de la PCB (301) ;
dans lequel le premier et le second plans x-y sont parallèles ;
la fourniture d'un premier motif de billes de soudure (304) sur la première face (101)
et d'un second motif de billes de soudure (306) sur la seconde face (201) ;
caractérisé en ce que
le premier et le second motifs de billes de soudure (304, 306) sont chacun un motif
symétrique ;
le premier et le second motifs de billes de soudure (304, 306) ont les mêmes coordonnées
x et y sur leurs plans x-y respectifs ; et
la carte électronique (102) est réversible de sorte qu'un signal acheminé sur une
couche intermédiaire de la PCB (301) est accessible avec un trou d'interconnexion
vers un premier plot sur la première face (101) et avec un trou d'interconnexion vers
un second plot sur la seconde face (201).
2. Procédé (400) de la revendication 1, dans lequel la fourniture, à la carte électronique
(102), de la PCB (301), comprend la fourniture d'une PCB multicouche (301).
3. Procédé (400) de la revendication 1 ou 2, dans lequel la fourniture, à la carte électronique
(102), de la PCB (301), comprend la fourniture d'une carte mezzanine commutée.
4. Procédé (400) de la revendication 3, dans lequel la fourniture, à la carte électronique
(102), de la PCB (301), comprend la fourniture, à la carte mezzanine commutée, d'une
PCB multicouche (301).
5. Procédé (400) de la revendication 1, comprenant en outre la désignation de la face
de connecteur spécifiée comme face froide.
6. Procédé (400) de la revendication 1, comprenant en outre la désignation de la face
fonctionnelle spécifiée comme face chaude.
7. Procédé (400) de l'une quelconque des revendications 1 à 6, comprenant en outre le
montage d'un connecteur sur la face de connecteur spécifiée.
8. Procédé (400) de l'une quelconque des revendications 1 à 7, comprenant en outre l'encapsulation
d'un motif de soudure inutilisé sur la face fonctionnelle spécifiée.
9. Procédé (400) de l'une quelconque des revendications 1 à 8, comprenant en outre le
fait de rendre un bout d'un motif de soudure inutilisé sur la face fonctionnelle spécifiée
plus court qu'une longueur prédéterminée.
10. Procédé (400) de la revendication 2 ou de l'une quelconque des revendications précédentes
qui est dépendante de la revendication 2, comprenant en outre l'acheminement du signal
sur une couche médiane de la PCB multicouche (301).
11. Procédé (400) de la revendication 10, comprenant en outre la dérivation du signal
à l'aide du trou d'interconnexion vers le premier plot sur la première face (101)
et vers le second plot sur la seconde face (201).